Comments (2)
Hi,
Keypoint sampling regarding its feature size (for a DoG-like detector) is a common practice in SfM pipelines (visualSFM, COLMAP etc.), which is the target application for this work. Usually, features with larger size are easy to match, while features with smaller size are more geometrically accurate. Since the geometry accuracy can be amended in later bundle adjustment, the sampling here is performed in descent order to ease the matching.
On the other hand, you may consider keypoint sampling according to its detection score (e.g., the DoG score for SIFT). Such sampling strategy is useful when you want to strictly limit the keypoint number (e.g., to 2000).
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Hi,
Thank you very much for your answer. Because I try not to add this sort, the result will be very poor. Is it generally octave is relatively large, then the corresponding feature point scale is also relatively large? But if I sort by octave, the effect is also very poor. Thanks!
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Related Issues (12)
- License information HOT 1
- Hpatches graph ploting script
- Problems when calling the model trained by tfmatch
- running examples with tensorflow2
- Match ratio HOT 1
- Reconstruction Pipeline HOT 4
- Extracting Descriptors on HPatches HOT 5
- Training code HOT 2
- 关于特征点使用的问题
- How to creating training dataset? HOT 1
- Patch size HOT 3
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